Given two sorted integer arrays nums1 and nums2, merge nums2 intonums1 as one sorted array.
Note:
You may assume that nums1 has enough space (size that is greater or equal tom +
n) to hold additional elements from nums2. The number of elements initialized innums1 and
nums2 are m and n respectively.
测试用例:
Runtime Error Message:
Last executed input:
Input:[1,2,3,0,0,0], 3, [2,5,6], 3
Output:[1,2,3,5,6]
Expected:[1,2,2,3,5,6]
错误的解决方案:
class Solution { public: void merge(vector<int>& nums1, int m, vector<int>& nums2, int n) { set<int> result; for(int i = 0;i<m;i++) { result.insert(nums1[i]); } for(int i = 0;i<n;i++) { result.insert(nums2[i]); } nums1.clear(); set<int>::iterator iter = result.begin(); for(;iter!=result.end();iter++) { nums1.push_back(*iter); } } };
我的解决方案:上面就是相同 的元素没装进来,换成multiset就行了
class Solution { public: void merge(vector<int>& nums1, int m, vector<int>& nums2, int n) { multiset<int> result; for(int i = 0;i<m;i++) { result.insert(nums1[i]); } for(int i = 0;i<n;i++) { result.insert(nums2[i]); } nums1.clear(); set<int>::iterator iter = result.begin(); for(;iter!=result.end();iter++) { nums1.push_back(*iter); } } };
简短的解决方案:
class Solution { public: void merge(int A[], int m, int B[], int n) { int k = m + n; while (k-- > 0) A[k] = (n == 0 || (m > 0 && A[m-1] > B[n-1])) ? A[--m] : B[--n]; } };
可读性较好:
class Solution { public: void merge(int A[], int m, int B[], int n) { int i=m-1; int j=n-1; int k = m+n-1; while(i >=0 && j>=0) { if(A[i] > B[j]) A[k--] = A[i--]; else A[k--] = B[j--]; } while(j>=0) A[k--] = B[j--]; } };
python解决方案:
class Solution: # @param A a list of integers # @param m an integer, length of A # @param B a list of integers # @param n an integer, length of B # @return nothing(void) def merge(self, A, m, B, n): x=A[0:m] y=B[0:n] x.extend(y) x.sort() A[0:m+n]=x
python解决方案2:thats why we love python
def merge(self, A, m, B, n): A[m:] = B[:n] A.sort()